Login / Signup

Enhanced osteogenesis of quasi-three-dimensional hierarchical topography.

Mengfei YuYu LiuXiaowen YuJianhua LiWenquan ZhaoJi'an HuKui ChengWenjian WengBin ZhangHuiming WangLingqing Dong
Published in: Journal of nanobiotechnology (2019)
Natural extracellular matrices (ECMs) are three-dimensional (3D) and multi-scale hierarchical structure. However, coatings used as ECM-mimicking structures for osteogenesis are typically two-dimensional or single-scaled. Here, we design a distinct quasi-three-dimensional hierarchical topography integrated of density-controlled titania nanodots and nanorods. We find cellular pseudopods preferred to anchor deeply across the distinct 3D topography, dependently of the relative density of nanorods, which promote the osteogenic differentiation of osteoblast but not the viability of fibroblast. The in vivo experimental results further indicate that the new bone formation, the relative bone-implant contact as well as the push-put strength, are significantly enhanced on the 3D hierarchical topography. We also show that the exposures of HFN7.1 and mAb1937 critical functional motifs of fibronectin for cellular anchorage are up-regulated on the 3D hierarchical topography, which might synergistically promote the osteogenesis. Our findings suggest the multi-dimensions and multi-scales as vital characteristic of cell-ECM interactions and as an important design parameter for bone implant coatings.
Keyphrases
  • bone regeneration
  • soft tissue
  • bone mineral density
  • extracellular matrix
  • transcription factor
  • reduced graphene oxide
  • stem cells
  • cell therapy
  • high resolution
  • body composition
  • solid state
  • type iii